Monitoring system and method based on anti-creeping monitoring device
Through a monitoring system based on the anti-leaking monitoring device, current and temperature data are collected and analyzed in real time, the leakage risk of overhead conductors of old distribution network low-voltage lines is solved, the power grid is safe, and efficient leakage monitoring and management is achieved.
Patent Information
- Application Number
- CN202510381743.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-28
- Publication Date
- 2025-07-01
AI Technical Summary
The overhead conductors of old distribution network low-voltage lines increase leakage risk due to damage to the insulation layer, hiding major public power safety risks.
The monitoring system based on the leakage prevention monitoring device is adopted. Through the monitoring terminal, the current and temperature data are collected, the intelligent monitoring platform conducts analysis, generates display information and sends it to the PC terminal and mobile terminal, real-time monitoring and management of leakage faults is realized.
Reasonable and efficient leakage monitoring of overhead conductors of old distribution network low-voltage lines has been achieved, ensuring the safe operation of the power grid and reducing leakage risks.
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Figure CN120233275A_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the field of leakage monitoring, and specifically relates to a monitoring system and method based on an anti-leakage monitoring device. Background Art
[0002] With the continuous acceleration of the urbanization pace, the trend of urban-rural integrated development has become increasingly prominent, and the extension of low-voltage distribution network cables has become more and more extensive. This has caused many distribution network lines to be in a sub-healthy state, especially the problems of old low-voltage overhead conductors of the distribution network are more prominent.
[0003] Currently, for the overhead conductors of old low-voltage distribution network lines, the method of combining street codes with wire binding is generally used for fixation. However, during long-term use, the insulation layer at the connection between the street code and the conductor often gets damaged. Especially at the corner positions, compared with the insulated conductors laid across lines, their insulation outer skins are more prone to aging and cracking. This fixation method relying on street codes and wire binding not only increases the risk of leakage, but also hides major public electricity safety hazards. Therefore, a reasonable monitoring system is needed to monitor the overhead conductors of old low-voltage distribution network lines in real time. Summary of the Invention
[0004] The purpose of the embodiments of this application is to provide a monitoring system and method based on an anti-leakage monitoring device, aiming to solve the problems that the overhead conductors of current old low-voltage distribution network lines increase the risk of leakage and hide major public electricity safety hazards. This solution can reasonably and efficiently achieve the leakage monitoring of the overhead conductors of old low-voltage distribution network lines and ensure the safe operation of the power grid.
[0005] In a first aspect, the embodiments of this application provide a monitoring method based on an anti-leakage monitoring device. The method is applied to a monitoring system based on an anti-leakage monitoring device. The monitoring system based on an anti-leakage monitoring device includes: a monitoring terminal, a smart monitoring platform, a mobile phone terminal, and a PC terminal. Among them, the monitoring terminal consists of an anti-leakage monitoring device. The monitoring method based on an anti-leakage monitoring device includes:
[0006] The monitoring terminal collects the monitoring data of the device to be detected and sends the monitoring data to the smart monitoring platform; among them, the monitoring data includes current data and temperature data;
[0007] The smart monitoring platform receives the monitoring data and judges whether there is a leakage fault in the device to be detected according to the monitoring data and generates a judgment result;
[0008] Generate first display information that matches the PC terminal based on the monitoring data and the judgment result, and send it to the PC terminal; and generate second display information that matches the mobile terminal based on the monitoring data and the judgment result, and send it to the mobile terminal;
[0009] The PC terminal receives the first display information and displays the first display information based on the first display rule; and the mobile terminal receives the second display information and displays the second display information based on the second display rule.
[0010] Further, judging whether the device to be detected has a leakage fault according to the monitoring data and generating a judgment result includes:
[0011] Identify whether the current data continuously exceeds a preset current threshold within a preset time period, and whether the temperature data continuously exceeds a preset temperature threshold within the preset time period;
[0012] If the current data continuously exceeds the preset current threshold within the preset time period, or the temperature data continuously exceeds the preset temperature threshold within the preset time period, then determine that the judgment result is that the device to be detected has a leakage fault;
[0013] If the current data is less than the preset current threshold within the preset time period, and the temperature data is less than the preset temperature data within the preset time period, then determine that the judgment result is that the device to be detected does not have a leakage fault.
[0014] Further, the generating the first display information that matches the PC terminal according to the monitoring data and the judgment result includes:
[0015] Draw a current change curve according to the change of the current data in the monitoring data over the acquisition time, and draw a temperature change curve according to the change of the temperature data in the monitoring data over the acquisition time;
[0016] Determine the marking color of the first display information according to the judgment result; wherein, if the judgment result is that the device to be detected has a leakage fault, then mark the first display information as red; if the judgment result is that the device to be detected does not have a leakage fault, then mark the first display information as green.
[0017] Further, the generating the second display information that matches the mobile terminal according to the monitoring data and the judgment result includes:
[0018] Generate a current value data table according to the current data in the monitoring data, and generate a temperature value data table according to the temperature data in the monitoring data;
[0019] Identify the judgment result. When the judgment result indicates that there is a leakage fault in the device to be detected, obtain the historical fault records, predict the fault type based on the comparison result between the detection data and the historical fault records, and obtain the repair measures and required repair tools for the fault type through big data. Generate a fault suggestion based on the fault type, the repair measures, and the repair tools.
[0020] Further, display the first display information based on the first display rule, including:
[0021] Retrieve the first display rule, determine the target window for displaying the current monitoring terminal according to the first display rule, and the column positions for the current change curve and the temperature change curve in the first display information;
[0022] Extract the current change curve and the temperature change curve, and display them respectively in the column positions in the target window;
[0023] Obtain the marked color in the first display information, and update the color of the target window according to the marked color.
[0024] Further, display the second display information based on the second display rule, including:
[0025] Retrieve the second display rule, and identify the judgment result in the second display information;
[0026] If the judgment result indicates that there is no leakage fault in the device to be detected, determine the target sub-column for displaying the current monitoring terminal according to the second display rule, and the display frame positions for the current value data table and the temperature value data table in the second display information, and display the current value data table and the temperature value data table respectively in the display frame positions in the target sub-column;
[0027] If the judgment result indicates that there is a leakage fault in the device to be detected, determine the target sub-column for displaying the current monitoring terminal according to the second display rule, and the display frame positions for the current value data table, the temperature value data table, and the fault suggestion in the second display information, and display the current value data table, the temperature value data table, and the fault suggestion respectively in the display frame positions in the target sub-column;
[0028] Set the target sub-column corresponding to the situation where there is a leakage fault in the device to be detected to a flashing display mode.
[0029] Further, the method further includes:
[0030] Obtain the set position of the monitoring terminal through the management system of the monitoring terminal, and obtain the terminal position of the mobile phone terminal through the positioning system of the mobile phone terminal;
[0031] Correspondingly, display the second display information based on the second display rule, including;
[0032] Identify the judgment result in the second display information. If the judgment result is that the device to be detected has a leakage fault, determine the display box position of the fault location according to the second display rule;
[0033] Obtain the regional map according to the set position and the terminal position, and display the regional map in the display box position;
[0034] Mark the set position and the terminal position on the regional map.
[0035] In a second aspect, an embodiment of the present application provides a monitoring system based on a leakage prevention monitoring device, and the system includes:
[0036] A monitoring system based on a leakage prevention monitoring device, characterized in that the system includes:
[0037] A monitoring terminal, configured to collect monitoring data of a device to be detected and send the monitoring data to the intelligent monitoring platform; wherein, the monitoring data includes current data and temperature data;
[0038] An intelligent monitoring platform, configured to receive the monitoring data by the intelligent monitoring platform, judge whether the device to be detected has a leakage fault according to the monitoring data and generate a judgment result; generate first display information matching the PC side according to the monitoring data and the judgment result and send it to the PC side; and generate second display information matching the mobile phone terminal according to the monitoring data and the judgment result and send it to the mobile phone terminal;
[0039] A PC side, configured to receive the first display information and display the first display information based on the first display rule;
[0040] A mobile phone terminal, configured to receive the second display information and display the second display information based on the second display rule.
[0041] In a third aspect, an embodiment of the present application provides an electronic device, which includes a processor, a memory, and a program or instruction stored on the memory and executable on the processor. When the program or instruction is executed by the processor, the steps of the method described in the first aspect are implemented.
[0042] Fourthly, an embodiment of the present application provides a readable storage medium, on which a program or instruction is stored. When the program or instruction is executed by a processor, the steps of the method described in the first aspect are implemented.
[0043] In the embodiment of the present application, the monitoring terminal collects the monitoring data of the device to be detected and sends the monitoring data to the intelligent monitoring platform; wherein, the monitoring data includes current data and temperature data; the intelligent monitoring platform receives the monitoring data, judges whether there is a leakage fault in the device to be detected according to the monitoring data and generates a judgment result; generates first display information matching the PC terminal according to the monitoring data and the judgment result and sends it to the PC terminal; and generates second display information matching the mobile terminal according to the monitoring data and the judgment result and sends it to the mobile terminal; the PC terminal receives the first display information and displays the first display information based on the first display rule; and the mobile terminal receives the second display information and displays the second display information based on the second display rule. For the above monitoring method based on the anti-leakage monitoring device, this solution can reasonably and efficiently realize the leakage monitoring of the overhead conductors of the low-voltage lines of the old distribution network and ensure the safe operation of the power grid. Description of the Drawings
[0044] Figure 1 is a schematic flow chart of a monitoring method based on an anti-leakage monitoring device provided by an embodiment of the present application;
[0045] Figure 2 is a schematic flow chart of a method for generating first display information matching the PC terminal according to the monitoring data and the judgment result provided by an embodiment of the present application;
[0046] Figure 3 is a schematic flow chart of a method for generating second display information matching the mobile terminal according to the monitoring data and the judgment result provided by an embodiment of the present application;
[0047] Figure 4 is a schematic structural diagram of a monitoring system based on an anti-leakage monitoring device provided by an embodiment of the present application;
[0048] Figure 5 is a schematic structural diagram of a monitoring device based on an anti-leakage monitoring device provided by an embodiment of the present application. Detailed Embodiments
[0049] To make the objectives, technical solutions, and advantages of this application clearer, the following further describes the specific embodiments of this application in detail with reference to the accompanying drawings. It can be understood that the specific embodiments described herein are only for explaining this application and not for limiting this application. Additionally, it should be noted that for ease of description, only parts related to this application are shown in the drawings rather than all the content. Before discussing the exemplary embodiments in more detail, it should be mentioned that some exemplary embodiments are described as processes or methods depicted as flowcharts. Although the flowcharts describe the operations (or steps) as sequential processes, many of the operations can be implemented in parallel, concurrently, or simultaneously. In addition, the order of the operations can be rearranged. The process can be terminated when its operations are completed, but it can also have additional steps not included in the drawings. The process can correspond to a method, function, procedure, subroutine, subprogram, and so on.
[0050] The following clearly describes the technical solutions in the embodiments of this application with reference to the accompanying drawings in the embodiments of this application. Obviously, the described embodiments are part of the embodiments of this application, rather than all the embodiments. Based on the embodiments in this application, all other embodiments obtained by those of ordinary skill in the art belong to the scope of protection of this application.
[0051] The terms "first", "second", etc. in the description and claims of this application are used to distinguish similar objects, rather than to describe a specific order or sequence. It should be understood that such data can be interchanged under appropriate circumstances so that the embodiments of this application can be implemented in an order other than those illustrated or described herein, and the objects distinguished by "first", "second", etc. are generally of the same category, and the number of objects is not limited. For example, the first object can be one or multiple. In addition, "and / or" in the description and claims means at least one of the connected objects, and the character " / " generally indicates an "or" relationship between the associated objects before and after.
[0052] The following, with reference to the accompanying drawings, details the monitoring system, method, and device based on a leakage prevention monitoring device provided in the embodiments of this application through specific embodiments and their application scenarios.
[0053] The application scenario of the embodiments of this application is to monitor a leakage prevention monitoring device, and the above-mentioned monitoring method based on the leakage prevention monitoring device is specifically executed by a monitoring system based on the leakage prevention monitoring device.
[0054] Figure 1It is a schematic flowchart of a monitoring method based on a leakage prevention monitoring device provided by an embodiment of the present application. The above method is applied to a monitoring system based on a leakage prevention monitoring device. The monitoring system based on a leakage prevention monitoring device includes: a monitoring terminal, an intelligent monitoring platform, a mobile phone terminal, and a PC terminal. Among them, the monitoring terminal is composed of a leakage prevention monitoring device.
[0055] Among them, the monitoring terminal is composed of a leakage prevention monitoring device, and its function is to collect data related to leakage in real time, such as information on the magnitude of the leakage current and the location where the leakage occurs, and then send this data to the intelligent monitoring platform. The intelligent monitoring platform is a data processing center responsible for receiving the data from the monitoring terminal and performing intelligent analysis. The mobile phone terminal, by installing a specific software application (APP), enables users to view the monitoring data on the mobile phone. The PC terminal, that is, the personal computer terminal, usually refers to a desktop computer or a laptop computer. Its function is similar to that of the mobile phone terminal and is used to view and manage the monitoring data. However, the advantage of the PC terminal is that it has a larger screen and is more convenient to operate, making it more suitable for complex data analysis and system settings and other tasks.
[0056] In one embodiment, the monitoring system based on a leakage prevention monitoring device collects data through the leakage prevention monitoring device, then transmits the data to the intelligent monitoring platform. At the same time, users can view the monitoring information through the mobile phone terminal and the PC terminal to achieve real-time monitoring and management of the leakage situation.
[0057] As Figure 1 shown, the monitoring method based on a leakage prevention monitoring device includes:
[0058] S101. The monitoring terminal collects the monitoring data of the device to be detected and sends the monitoring data to the intelligent monitoring platform; among them, the monitoring data includes current data and temperature data.
[0059] Among them, the monitoring terminal refers to a leakage and temperature monitoring device, which is used to monitor the leakage and temperature conditions in the circuit in real time. The monitoring data refers to the real-time information about the leakage and temperature conditions in the circuit collected by the monitoring terminal. The current data and temperature data refer to the current value, temperature value detected by the monitoring terminal and the relevant information during the acquisition process.
[0060] In one embodiment, the monitoring terminal obtains the monitoring data of the device to be detected through a built-in data acquisition module, and performs preliminary processing on the collected data, such as data cleaning, format conversion, etc. The monitoring terminal transmits the data to the intelligent monitoring platform by wired or wireless means, and the specific transmission method is not limited.
[0061] Optionally, encryption technology can be adopted during data transmission to ensure data security. For example, an authentication mechanism is established between the monitoring terminal and the intelligent monitoring platform to prevent data from being illegally accessed or tampered with.
[0062] S102. The intelligent monitoring platform receives the monitoring data, determines whether there is a leakage fault in the device to be detected according to the monitoring data, and generates a judgment result.
[0063] Among them, a leakage fault refers to a phenomenon in which, in an electrical device or circuit, due to insulation damage, aging or other factors, current leaks from the normal conductive part to the non-conductive part. For example, when the insulating outer skin of a wire is damaged and the inner conductor contacts the electrical appliance shell, the current will conduct through the shell, and this is a leakage. In the context of leakage monitoring, the judgment result refers to the conclusion of whether there is a leakage situation obtained after analyzing the monitored information.
[0064] In one embodiment, the intelligent monitoring platform receives the monitoring data from the monitoring terminal in real time through a stable communication protocol and interface. The monitoring data includes key parameters such as current data and temperature data. The monitoring data is preprocessed and input into a judgment model. The model determines whether there is a leakage fault in the device to be detected according to the changes in parameters such as current data and temperature data, and generates a conclusion on whether there is a leakage fault according to the judgment result of the model. Among them, the judgment result may include information such as whether there is a fault, the type of fault, the location of the fault, and the degree of the fault.
[0065] Optionally, determining whether there is a leakage fault in the device to be detected according to the monitoring data and generating a judgment result includes:
[0066] Identifying whether the current data continuously exceeds a preset current threshold within a preset duration, and whether the temperature data continuously exceeds a preset temperature threshold within the preset duration;
[0067] If the current data continuously exceeds the preset current threshold within the preset duration, or the temperature data continuously exceeds the preset temperature threshold within the preset duration, it is determined that the judgment result is that there is a leakage fault in the device to be detected;
[0068] If the current data is less than the preset current threshold within the preset duration, and the temperature data is less than the preset temperature data within the preset duration, it is determined that the judgment result is that there is no leakage fault in the device to be detected.
[0069] Among them, the preset duration is the maximum duration for which the electrical equipment can operate safely under the current and temperature conditions obtained based on the analysis of historical leakage fault data. The preset current threshold refers to an upper limit value of the current preset in the power system to ensure the safe and stable operation of the equipment. The preset temperature threshold refers to an upper limit value of the temperature preset in the power system to prevent dangers or faults caused by excessive temperature.
[0070] In one embodiment, the intelligent monitoring platform uses data structures such as arrays, lists, or queues to store the current data and temperature data within the preset duration. Within the preset duration, the intelligent monitoring platform regularly (e.g., every second) collects the current data and temperature data and stores them in the above data structures. Traverse the stored current data to check if all values are greater than the current threshold. If all values are greater than the current threshold, the current condition is met. Traverse the stored temperature data to check if all values are greater than the temperature threshold. If all values are greater than the temperature threshold, the temperature condition is met. If there is a situation where the current condition is met or the temperature condition is met, it is determined that the judgment result is that the device to be detected has a leakage fault. If neither the current condition nor the temperature condition is met, it is determined that the judgment result is that the device to be detected does not have a leakage fault.
[0071] S103. Generate first display information matching the PC terminal based on the monitoring data and the judgment result, and send it to the PC terminal; and generate second display information matching the mobile terminal based on the monitoring data and the judgment result, and send it to the mobile terminal.
[0072] Among them, the first display information refers to the data information generated based on the monitoring data and the judgment result of whether there is a leakage situation for display on the PC terminal. The second display information refers to the data information generated based on the monitoring data and the judgment result of whether there is a leakage situation for display on the mobile terminal.
[0073] In one embodiment, according to the different characteristics of the PC terminal and the mobile terminal, analyze their respective requirements for display information. For example, the PC terminal may focus more on detailed data analysis and chart display, while the mobile terminal may emphasize more on presenting simple and clear information. According to the display requirements of the PC terminal, format the monitoring data and the judgment result to generate the first display information including detailed data, charts, analysis reports, etc., and send it to the PC terminal. According to the display requirements of the mobile terminal, simplify the monitoring data and the judgment result to generate the second display information including key data, status indicators, alarm information, etc., and send it to the mobile terminal.
[0074] Figure 2It is a schematic flowchart of a method for generating first display information matching the PC side according to the monitoring data and the judgment result provided by an embodiment of the present application. As Figure 2 shown, the method includes:
[0075] S1031. Draw a current change curve according to the change of the current data in the monitoring data with the acquisition time, and draw a temperature change curve according to the change of the temperature data in the monitoring data with the acquisition time.
[0076] Among them, the acquisition time refers to the specific time point when the current data and temperature data are collected. The current change curve is a graphical representation describing the change of current over time. The temperature change curve refers to a graph showing the change of temperature over time. It usually consists of a time axis and a temperature axis. The time axis represents the change of time, and the temperature axis represents the change of temperature. By connecting the temperature measurement data into a curve in chronological order, the trend and law of temperature change can be intuitively reflected.
[0077] In one embodiment, the monitoring data is organized into an easy-to-process format, such as a CSV file, a database table, or a Python list, etc. The data should include three columns: acquisition time, current value, and temperature value. Then, using programming languages such as Python, the data is imported through file reading or database query. The current data and acquisition time data are extracted, and a chart is created using a plotting tool. The X-axis is set as the acquisition time, the Y-axis is set as the current value, and the data points are connected to form a current change curve. And, the temperature data and acquisition time data are extracted. Similarly, a chart is created using a plotting tool. The X-axis is set as the acquisition time, the Y-axis is set as the temperature value, and the data points are connected to form a temperature change curve.
[0078] S1032. Determine the marking color of the first display information according to the judgment result; among them, if the judgment result is that the device to be detected has a leakage fault, the first display information is marked as red; if the judgment result is that the device to be detected does not have a leakage fault, the first display information is marked as green.
[0079] Among them, the marking color refers to the color marking used to distinguish, emphasize, or indicate different data, states, or categories in the interface or chart.
[0080] In one embodiment, the intelligent monitoring terminal determines whether there is a leakage fault. If the determination result is that there is a leakage fault in the device, the marker color field in the corresponding first display information is set to red; if the determination result is that there is no leakage fault in the device, it is set to green. When the first display information is presented on the PC side, the marker color field in the first display information is read. According to the marker color, the first display information is displayed in the corresponding color on the display interface. For example, if the marker color is red, the information of the device with a leakage fault can be highlighted using red font, background color, or icon; if the marker color is green, the information of the normal device is displayed in green.
[0081] Figure 3 It is a schematic flowchart of a method for generating second display information matching the mobile terminal according to the monitoring data and the determination result provided by an embodiment of the present application. As Figure 3 shown, the method includes:
[0082] S1033. Generate a current value data table according to the current data in the monitoring data, and generate a temperature value data table according to the temperature data in the monitoring data.
[0083] Among them, the current value data table refers to a data table used to record and display the magnitude of the current in the circuit, usually including relevant information such as the measured value of the current, the measurement time, and the measurement location. The temperature value data table refers to a table used to record and display temperature data, usually including relevant information such as the specific value of the temperature, the measurement time, and the measurement location.
[0084] In one embodiment, first, design the data structures for the current value data table and the temperature value data table. This can be a table in a database, an Excel spreadsheet, a CSV file, or a data structure in memory (such as a list, dictionary, etc.), and specific limitations are not made. Then, fill the extracted current data and temperature data into the corresponding data tables respectively to generate the current value data table and the temperature value data table.
[0085] S1034. Identify the determination result. When the determination result is that there is a leakage fault in the device to be detected, obtain the historical fault records, predict the fault type according to the comparison result between the detection data and the historical fault records, and obtain the repair measures and required repair tools for the fault type through big data. Generate a fault suggestion according to the fault type, the repair measures, and the repair tools.
[0086] Among them, historical fault records refer to the detailed records of past faults that occurred in equipment or systems. It includes the time of fault occurrence, location, equipment information, fault manifestations, handling process, etc. For example, in a power system, the historical fault record will show that a certain transformer had a short - circuit fault on May 10, 2023. The location was the No. 2 transformer in Substation A. The fault manifestations were smoking and abnormal voltage. The handling process was that the maintenance personnel replaced the damaged winding. Fault types are the classification of faults according to certain criteria, which can be specifically divided according to the cause, phenomenon, and scope of influence of the fault. Big data refers to a large - volume, complex, and fast - growing data set. Maintenance measures refer to a series of actions taken to restore the normal operation state or improve the performance of equipment when it fails or its performance deteriorates. Maintenance tools refer to the tools required for maintaining power equipment with leakage faults. Fault suggestions refer to the suggestions for preventing the recurrence of faults or improving the existing situation based on fault analysis after a leakage fault occurs in power equipment.
[0087] In one embodiment, after the intelligent monitoring platform confirms that there is a leakage fault in the equipment, it retrieves the historical fault records related to the equipment from the database. These records may include information such as past fault types, occurrence times, maintenance records, etc. Using machine learning or data - mining techniques, compare the currently detected data with the historical fault records. Based on the comparison results, predict the current fault type. Based on the fault type, query the maintenance measures and required maintenance tools related to this fault type through the big - data platform. Finally, generate a detailed fault - suggestion report according to the fault type, maintenance measures, and required maintenance tools. This report specifically includes a brief description of the fault cause, recommended maintenance steps, required maintenance tools and materials, and maintenance costs, etc.
[0088] Optionally, query the maintenance measures and required maintenance tools related to this fault type through the database. This information can be pre - sorted and stored in a certain database, or can be obtained by accessing a specific knowledge base or expert system.
[0089] S104. The PC terminal receives the first display information and displays the first display information based on the first display rule; and the mobile phone terminal receives the second display information and displays the second display information based on the second display rule.
[0090] Among them, the first display rule refers to the data display and layout regulations applicable to the PC terminal. The second display rule refers to the data display and layout regulations applicable to the mobile phone terminal.
[0091] In one embodiment, the PC terminal receives the first display information from the intelligent monitoring platform through a preset communication protocol and interface. According to the preset first display rule, the PC terminal converts the parsed data into a format suitable for its display interface. For example, adjust the layout, color, font size, etc. of the data. Then, the PC terminal displays the data after applying the first display rule on the user interface. The mobile terminal also receives the second display information from the intelligent monitoring platform through the corresponding communication protocol and interface. The mobile terminal converts the parsed data into a format suitable for its display interface according to the preset second display rule. Then, the data after applying the second display rule is displayed on the user interface. For example, the second display information is displayed in a scrolling, paging, or folding manner.
[0092] Optionally, the displaying of the first display information based on the first display rule includes:
[0093] Retrieve the first display rule, and determine the target window for displaying the current monitoring terminal according to the first display rule, and the column positions of the current change curve and the temperature change curve in the first display information;
[0094] Extract the current change curve and the temperature change curve, and display them respectively at the column positions in the target window;
[0095] Obtain the marked color in the first display information, and update the color of the target window according to the marked color.
[0096] Here, a window is a graphical area for displaying a program interface and interacting with the user. The target window refers to the window currently used to display the first display information. Column division means dividing the layout of a document or newspaper into several columns, and the column position refers to the specific layout or position of these columns in the layout. For example, in a Word document, the text can be divided into two or more columns, and parameters such as the width and spacing of these columns can be set.
[0097] In one embodiment, the PC determines the attributes (such as type, size, position, etc.) of the target window for displaying the first display information according to the read first display rule, and determines the column positions of the current change curve and the temperature change curve. Then, it extracts the data of the current change curve and the temperature change curve from the first display information. These data can be stored in the form of arrays, lists or other data structures, and the current and temperature change curves are drawn in the column positions of the target window using a graphics drawing library (such as matplotlib, PyQtGraph, etc.). Finally, it obtains the marker color from the first display information. The marker color can specifically be used to highlight certain important data points or regions, or to change the background color of the target window to reflect the current monitoring status. According to the obtained marker color, the color attributes of the target window are updated. For example, the window background color, border color or text color, etc. are changed.
[0098] Optionally, the displaying of the second display information based on the second display rule includes:
[0099] Retrieving the second display rule to identify the judgment result in the second display information;
[0100] If the judgment result is that the device to be detected has no leakage fault, determine the target sub-column for displaying the current monitoring terminal according to the second display rule, and the display box positions of the current value data table and the temperature value data table in the second display information, and display the current value data table and the temperature value data table in the display box positions in the target sub-column respectively;
[0101] If the judgment result is that the device to be detected has a leakage fault, determine the target sub-column for displaying the current monitoring terminal according to the second display rule, and the display box positions of the current value data table, the temperature value data table and the fault suggestion in the second display information, and display the current value data table, the temperature value data table and the fault suggestion in the display box positions in the target sub-column respectively;
[0102] Set the target sub-column corresponding to the situation that the device to be detected has a leakage fault to a flashing display mode.
[0103] Among them, the target sub-column refers to a classification list based on the position or number of the monitoring terminal. The display box position refers to the specific position of the rectangular area for displaying information or data in the graphical user interface (GUI).
[0104] In one embodiment, when the mobile terminal receives the second display rule, it first determines the recognition result according to the second display information. If the determination result is that there is no leakage fault, the target sub-column and the display box position are determined according to the rule, and the current value data table and the temperature value data table are displayed at the corresponding positions. For example, the mobile development framework (such as the XML layout file of Android or the Storyboard of iOS) is used to define the interface layout, and the data is dynamically filled into the corresponding positions through code. If the determination result is that there is a leakage fault, in addition to displaying the current value data table and the temperature value data table, it is also necessary to display the fault suggestion. Similarly, the target sub-column and the display box position are determined according to the rule and displayed. Moreover, the corresponding target sub-column needs to be set to a flashing display mode. In mobile development, flashing can be achieved through a timer and animation effects. For example, in Android, property animation or frame animation can be used to achieve the flashing effect, and in iOS, CoreAnimation can be used to achieve a similar effect. The above implementation methods are for illustrative purposes only and are not intended to limit the implementation methods.
[0105] Optionally, the method further includes:
[0106] Obtaining the set position of the monitoring terminal through the management system of the monitoring terminal, and obtaining the terminal position of the mobile terminal through the positioning system of the mobile terminal;
[0107] Correspondingly, displaying the second display information based on the second display rule includes:
[0108] Identifying the determination result in the second display information. If the determination result is that the device to be detected has a leakage fault, the display box position of the fault position is determined according to the second display rule;
[0109] Obtaining a regional map according to the set position and the terminal position, and displaying the regional map in the display box position;
[0110] Marking the set position and the terminal position on the regional map.
[0111] The set position of the monitoring terminal refers to the geographical location or spatial position where the monitoring terminal is actually installed or deployed. For example, in the monitoring of transmission line faults, the monitoring terminals are scattered at specific positions on the transmission line. The terminal position of the mobile terminal refers to the position of the mobile terminal in the communication network, which is usually determined by methods such as base station positioning.
[0112] Among them, the position of the display box for the fault location refers to the specific position of a rectangular area (i.e., the display box) in the graphical user interface (GUI) for displaying the specific location information of the occurrence of a device or system fault. The area map refers to an electronic map that includes the installation location of the monitoring terminal and the terminal location of the mobile phone terminal.
[0113] In one embodiment, the management system of the monitoring terminal obtains the location information of the management monitoring terminal. Based on GPS, base station positioning, or other positioning technologies, the geographical location where the mobile phone terminal is currently located is determined.
[0114] Correspondingly, the mobile phone terminal determines whether there is a leakage fault according to the second display information. If the judgment result in the second display information indicates that the device to be detected has a leakage fault, the mobile phone terminal determines a display box position according to the second display rule for specifically displaying the fault location information. This display box can be a small window or area at a specific position on the screen for highlighting the fault information. According to the installation location of the monitoring terminal and the terminal location of the mobile phone terminal, the mobile phone terminal obtains an area map. This map may be an electronic map showing the geographical area where these two locations are located. After obtaining the map, the mobile phone terminal displays it in the previously determined display box position. In this way, the user can intuitively see the relative relationship between the fault location and the mobile phone location on the map. And on the area map, the mobile phone terminal marks the installation location of the monitoring terminal and the terminal location of the mobile phone terminal. This is usually achieved through icons, points, or labels on the map. As described above, it helps the user better understand and process the location information of the monitoring terminal and the mobile phone terminal and the fault situation in a visual way.
[0115] As can be seen from the above, the monitoring terminal collects the monitoring data of the device to be detected and sends the monitoring data to the intelligent monitoring platform; among them, the monitoring data includes current data and temperature data; the intelligent monitoring platform receives the monitoring data, judges whether the device to be detected has a leakage fault according to the monitoring data and generates a judgment result; generates first display information matching the PC side according to the monitoring data and the judgment result and sends it to the PC side; and generates second display information matching the mobile phone terminal according to the monitoring data and the judgment result and sends it to the mobile phone terminal; the PC side receives the first display information and displays the first display information based on the first display rule; and the mobile phone terminal receives the second display information and displays the second display information based on the second display rule. For the above monitoring method based on the anti-leakage monitoring device, this solution can reasonably and efficiently achieve the leakage monitoring of the overhead conductors of the low-voltage lines of the old distribution network and ensure the safe operation of the power grid.
[0116] Figure 4It is a schematic structural diagram of a monitoring system based on a leakage prevention monitoring device provided by an embodiment of the present application. As Figure 4 shown, the system specifically includes:
[0117] A monitoring terminal 401, configured to collect monitoring data of a device to be detected and send the monitoring data to the intelligent monitoring platform; wherein, the monitoring data includes current data and temperature data;
[0118] An intelligent monitoring platform 402, configured to receive the monitoring data by the intelligent monitoring platform, determine whether there is a leakage fault in the device to be detected according to the monitoring data and generate a judgment result; generate first display information matching the PC side according to the monitoring data and the judgment result and send it to the PC side; and generate second display information matching the mobile terminal according to the monitoring data and the judgment result and send it to the mobile terminal;
[0119] A PC side 403, configured to receive the first display information and display the first display information based on a first display rule;
[0120] A mobile terminal 404, configured to receive the second display information and display the second display information based on a second display rule.
[0121] The monitoring system based on the leakage prevention monitoring device provided by the embodiment of the present application corresponds to the monitoring method based on the leakage prevention monitoring device provided by the above embodiment and has the same beneficial effects. To avoid repetition, it will not be elaborated here.
[0122] Figure 5 It is a schematic structural diagram of a monitoring device based on a leakage prevention monitoring device provided by an embodiment of the present application. As Figure 5 shown, the monitoring device based on the leakage prevention monitoring device includes a processor 501, a memory 502, a program or instruction stored on the memory 502 and executable on the processor 501. When the program or instruction is executed by the processor 501, it realizes each process of the above embodiment of the monitoring device based on the leakage prevention monitoring device and can achieve the same technical effect. To avoid repetition, it will not be elaborated here.
[0123] It should be noted that the electronic devices in the embodiments of the present application include the above-mentioned mobile electronic devices and non-mobile electronic devices.
[0124] The embodiment of the present application also provides a readable storage medium, on which a program or instruction is stored. When the program or instruction is executed by a processor, it realizes each process of the above embodiment of the monitoring device based on the leakage prevention monitoring device and can achieve the same technical effect. To avoid repetition, it will not be elaborated here.
[0125] Among them, the processor is the processor in the electronic device described in the above embodiments. The readable storage medium includes computer-readable storage media such as computer read-only memory (ROM), random access memory (RAM), magnetic disk, or optical disc.
[0126] It should be noted that in this article, the term "including", "comprising", or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article, or device including a series of elements not only includes those elements, but also includes other elements not explicitly listed, or further includes elements inherent to such a process, method, article, or device. Without more limitations, an element defined by the statement "including one..." does not exclude the existence of additional identical elements in the process, method, article, or device including that element. In addition, it should be pointed out that the scope of the methods and devices in the embodiments of the present application is not limited to performing functions in the order shown or discussed, and may also include performing functions in a substantially simultaneous manner or in a reverse order according to the functions involved. For example, the described methods may be performed in an order different from that described, and various steps may also be added, omitted, or combined. Additionally, features described with reference to certain examples may be combined in other examples.
[0127] Through the description of the above embodiments, those skilled in the art can clearly understand that the methods of the above embodiments can be implemented by means of software plus a necessary general hardware system. Of course, it can also be implemented by hardware, but in many cases, the former is a better implementation. Based on such an understanding, the technical solution of the present application, in essence, or the part that contributes to the prior art, can be embodied in the form of a computer software product. This computer software product is stored in a storage medium (such as ROM / RAM, magnetic disk, optical disc) and includes several instructions for causing a terminal (which may be a mobile phone, computer, server, or network device, etc.) to execute the methods described in various embodiments of the present application.
[0128] The embodiments of the present application have been described above in conjunction with the accompanying drawings. However, the present application is not limited to the above specific embodiments. The above specific embodiments are merely illustrative and not restrictive. Under the inspiration of the present application, those of ordinary skill in the art can also make many forms without departing from the purpose of the present application and the scope protected by the claims, and all of them belong to the protection scope of the present application.
[0129] The above are only the preferred embodiments of the present application and the technical principles applied. The present application is not limited to the specific embodiments described herein. Various obvious changes, re-adjustments, and substitutions that can be made by those skilled in the art will not depart from the protection scope of the present application. Therefore, although the present application has been described in more detail through the above embodiments, the present application is not limited to the above embodiments. Without departing from the concept of the present application, it may also include more other equivalent embodiments, and the scope of the present application is determined by the scope of the claims.
Claims
1. A monitoring method based on an anti-leakage monitoring device, applied to a monitoring system based on an anti-leakage monitoring device, the monitoring system based on the anti-leakage monitoring device comprising: Monitoring terminal, intelligent monitoring platform, mobile terminal and PC terminal, wherein the monitoring terminal is composed of an anti-leakage monitoring device; the monitoring method based on the anti-leakage monitoring device includes: The monitoring terminal collects monitoring data of the equipment to be detected and sends the monitoring data to the smart monitoring platform; wherein the monitoring data includes current data and temperature data; The smart monitoring platform receives the monitoring data, determines whether the device to be detected has a leakage fault according to the monitoring data, and generates a judgment result; Generate first display information matching the PC terminal according to the monitoring data and the judgment result, and send it to the PC terminal; and generate second display information matching the mobile terminal according to the monitoring data and the judgment result, and send it to the mobile terminal; The PC receives the first display information and displays the first display information based on a first display rule; and the mobile phone terminal receives the second display information and displays the second display information based on a second display rule.
2. The monitoring method based on the leakage protection monitoring device according to claim 1 is characterized in that: Judging whether the device to be detected has a leakage fault according to the monitoring data and generating a judgment result includes: Identify whether the current data is continuously greater than a preset current threshold value for a preset time period, and whether the temperature data is continuously greater than a preset temperature threshold value for the preset time period; If the current data is continuously greater than the preset current threshold value for a preset time period, or the temperature data is continuously greater than the preset temperature threshold value for the preset time period, it is determined that the device to be detected has a leakage fault; If the current data is less than the preset current threshold value within the preset time period, and the temperature data is less than the preset temperature data within the preset time period, it is determined that the judgment result is that there is no leakage fault in the device to be detected.
3. The monitoring method based on the leakage protection monitoring device according to claim 1 is characterized in that: The generating first display information matching the PC terminal according to the monitoring data and the judgment result includes: Draw a current change curve according to the change of the current data in the monitoring data with the acquisition time, and draw a temperature change curve according to the change of the temperature data in the monitoring data with the acquisition time; The marking color of the first display information is determined according to the judgment result; if the judgment result is that the device to be detected has a leakage fault, the first display information is marked in red; if the judgment result is that the device to be detected does not have a leakage fault, the first display information is marked in green.
4. The monitoring method based on the leakage protection monitoring device according to claim 1 is characterized in that: The generating second display information matching the mobile phone terminal according to the monitoring data and the judgment result includes: generating a current value data table according to the current data in the monitoring data, and generating a temperature value data table according to the temperature data in the monitoring data; The judgment result is identified. When the judgment result is that the equipment to be detected has a leakage fault, historical fault records are obtained, and the fault type is predicted based on the comparison result of the detection data with the historical fault records. Repair measures and required repair tools for the fault type are obtained through big data, and fault suggestions are generated based on the fault type, the repair measures and the repair tools.
5. The monitoring method based on the leakage protection monitoring device according to claim 3 is characterized in that: The displaying the first display information based on the first display rule includes: Retrieving a first display rule, and determining, according to the first display rule, a target window for displaying the current monitoring terminal, and column positions of the current change curve and the temperature change curve in the first display information; Extracting the current variation curve and the temperature variation curve, and displaying them in column positions in the target window respectively; The mark color in the first display information is obtained, and the color of the target window is updated according to the mark color.
6. The monitoring method based on the leakage protection monitoring device according to claim 4 is characterized in that: The displaying the second display information based on the second display rule includes: Retrieving the second display rule and identifying the judgment result in the second display information; If the judgment result is that the device to be detected does not have a leakage fault, determine the target sub-column for displaying the current monitoring terminal and the display frame positions of the current value data table and the temperature value data table in the second display information according to the second display rule, and display the current value data table and the temperature value data table in the display frame positions of the target sub-column respectively; If the judgment result is that the device to be detected has a leakage fault, determine the target sub-column for displaying the current monitoring terminal and the display frame positions of the current value data table, the temperature value data table and the fault suggestion in the second display information according to the second display rule, and display the current value data table, the temperature value data table and the fault suggestion in the display frame positions of the target sub-column respectively; The target sub-column corresponding to the situation where the device to be detected has a leakage fault is set to a flashing display mode.
7. The monitoring method based on the leakage protection monitoring device according to claim 4 is characterized in that: The method further comprises: Acquiring the setting location of the monitoring terminal through the management system of the monitoring terminal, and acquiring the terminal location of the mobile terminal through the positioning system of the mobile terminal; Accordingly, displaying the second display information based on the second display rule includes: Identifying the judgment result in the second display information, and if the judgment result is that the device to be detected has a leakage fault, determining the display frame position of the fault position according to the second display rule; Acquire a regional map according to the setting position and the terminal position, and display the regional map in the display frame position; The setting location and the terminal location are marked on the area map.
8. A monitoring system based on an anti-leakage monitoring device, characterized in that: The system comprises: A monitoring terminal is used to collect monitoring data of the equipment to be detected and send the monitoring data to the smart monitoring platform; wherein the monitoring data includes current data and temperature data; A smart monitoring platform, used for the smart monitoring platform to receive the monitoring data, determine whether the device to be detected has a leakage fault according to the monitoring data and generate a judgment result; generate first display information matching the PC terminal according to the monitoring data and the judgment result, and send it to the PC terminal; and generate second display information matching the mobile terminal according to the monitoring data and the judgment result, and send it to the mobile terminal; The PC is configured to receive the first display information and display the first display information based on a first display rule; The mobile phone terminal is used to receive the second display information and display the second display information based on the second display rule.
9. A monitoring device based on an anti-leakage monitoring device, the device comprising: one or more processors; A storage device, used to store one or more programs. When the one or more programs are executed by the one or more processors, the one or more processors implement the monitoring method based on the leakage protection monitoring device as described in any one of claims 1-7.
10. A storage medium storing computer executable instructions, wherein the computer executable instructions are used to execute the monitoring method based on the leakage protection monitoring device according to any one of claims 1 to 7 when executed by a computer processor.
Citation Information
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